Amnuyswat, Kittiphong
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Amnuyswat, Kittiphong
Alternative Name
Amnuyswat, K.
Main Affiliation
Email
kittiphong.am@kmitl.ac.th
5 results
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Item type:Publication, Band gap prediction of the alloying halide perovskites using GW compare to DFT-1/2 method(2020-10-26); The outstanding optoelectronic properties of methylammonium halide perovskites, including the tunable spectral absorption range, high carrier mobilities and low carrier recombination rates, make these materials are interesting for a decade year. In my works, a first-principle calculation based on non-local van der Waals-corrected Density Functional Theory (vdW-DFT) is performed to investigate high accuracy atomic structures and their properties of the alloying halide perovskites (CH3NH3PbIxBr1-x). While DFT generally underestimates the band gap for practically semiconductors and insulators, it provided a surprising accurate value for methylammonium halide perovskites. Unfortunately, this performance is not existing to another hybrid halide perovskite. The relativistic GW approximation is known to be a better-provided band gap more accurately, but at an extremely high computational cost were applied to the study. Here we also report the efficiency and accuracy of the bandgap calculations of methylammonium halide perovskites by using the self-consistent quasiparticle GW method (scGW) incorporated with the spin-orbit coupling comparing to recent develops DFT-1/2 method. The latter computational scheme provides accurate band gaps with the precision of the scGW method with no more computational cost than standard DFT. This method can solve the band gap problem by correcting the half-hole/half-electron occupation in the pseudopotentials. This work yields the possibility of the band gap prediction of alloying halide perovskite material (CH3NH3PbIxBr1-x) that good for optoelectronic design such as planar dye solar cell. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Roles of spin-orbit coupling in tetragonal hybrid halide perovskite for photovoltaics light-absorber(2018-01-01); Hybrid halide perovskite has been gain appropriate attraction because of their relatively high efficiency in most recently solid-state solar cell development. In this work, A first-principle calculation based on non-local van der Waals-corrected Density Functional Theory (vdW-DFT) is performed to investigate high accuracy atomic structures of a tetragonal structure methyl ammonium (CH<inf>3</inf>NH<inf>3</inf>) metal (Pb, Sn) halide (Br<inf>3</inf>, Cl<inf>3</inf>, I<inf>3</inf>). The calculated electronic structures were systematically studied using semi-local exchange-correlation functional (GGA-PBE), non-local functional (hybrid HSE06) and post-DFT approximation (GW). A relativistic effect in metal ion was taken into account by incorporating spin-orbit coupling (SOC) effect to obtain more accurate band gap properties of these materials. Our results shown that SOC corrected the electronic structures about 0.92 eV and 0.19 eV in case of lead ion and tin ion, respectively. The combination between GW approximation and spin-orbit coupling show a good agreement between DFT calculations and experimental studies. This computational scheme is necessary for high accuracy organic-inorganic solar cell design. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Local structure investigation of indium oxynitride thin films by X-ray absorption fine structure(2010-05-05); ; ;Sopitpan, S. ;Sungthong, A.Porntheeraphat, S.Indium Oxynitride (InON) thin films prepared by Reactive gas-timing RF magnetron sputtering technique are investigated using X-ray absorption fine structure and first principle calculation. It was found from the former study[2] that optical and electrical properties of these films highly depended on its gas-timing ratio in the sputtering process. Therefore structural investigations of these films are required in order to describe the relation between the gas-timing ratio and their optical properties. The results show that local structure of the InON thin films consist of both indium oxide (In <inf>2</inf>O<inf>3</inf>) and indium nitride (InN) phase. ©2010 IEEE. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Investigation of oxygen contamination in indium nitride thin film by x-ray absorption fine structure(2010-02-05); ; ;Sopitpan, S. ;Sungthong, A.Porntheerapat, S.Local structures of indium oxynitride (InON) nano-crystal prepared by reactive gastiming RF magnetron sputtering technique are under investigation. Since the optical properties of these InON thin films depend on gas-timing ratio, the local structure analysis is needed in order to determine the relation between the gas timing ratio and its optical properties. In this work, InON thinfilm with 30:0 seconds (N<inf>2</inf>:O<inf>2</inf>) gas-timings ratio was analyzed for its local structure using X-ray absorption fine structure (XAFS) technique in conjunction with first principle calculation. The results indicate that the crystal structure of the film is wurtzite structure which is a typical structure of InN. However from the results of Auger Electron Spectroscopy (AES), there are oxygen contents in the film. Since XAFS analysis confirmed the 4-fold local structure of Indium atom, these oxygen atoms must be substituted in nitrogen sites with slightly changing the local structure of Indium atom. The best fit of XAFS data indicated that there is an oxygen atom substituted in nitrogen site of the 4-fold indium. © (2010) Trans Tech Publications. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Improvement of energy gap prediction for hybrid perovskite materials by first-principle calculation(2018-09-05); The breakthrough discovery of pollution free renewable energy has been awarded to conversion of solar energy into electrical energy using planar heterojunction solar cell. A layer of hybrid perovskite light harvesting materials between transport layer and electrode is essential for high power conversion efficiency (PCE). In this work, first-principle calculation based on non-local van der Waals-corrected Density Functional Theory (vdW-DFT) is used to examine atomic structures of the most popular hybrid perovskite materials used in solar cell absorption layer. The optical band gaps achieved from electronic band structures were consistently studied using semi-local exchange-correlation functional (GGA-PBE) and post-DFT approximation (GW approximation). In order to improve band gap accuracy, we tried to compensate relativistic effect in metal ion using spin-orbit coupling (SOC). Our results showed that the energy gap predictions using first-principles GW calculations incorporate with SOC scheme are in good agreement with available experimental reports. Therefore, this calculation scheme is suggested for high accuracy organic-inorganic solar cell design.
